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Trip Mining and Recommendation from Geo-tagged Photos

机译:从地理标记的照片举行挖掘和推荐

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摘要

Trip planning is generally a very time-consuming task due to the complex trip requirements and the lack of convenient tools/systems to assist the planning. In this paper, we propose a travel path search system based on geo-tagged photos to facilitate tourists' trip planning, not only for where to visit but also how to visit. The large scale geo-tagged photos that are public ally available on the web make this system possible, as geo-tagged photos encode rich travel-related metadata and can be used to mine travel paths from previous tourists. In this work, about 20 million geo-tagged photos were crawled from Panoramio.com. Then a substantial number of travel paths are minded from the crawled geo-tagged photos. After that, a search system is built to index and search the paths, and the Sparse Chamfer Distance is proposed to measure the similarity of two paths. The search system supports various types of queries, including (1) a destination name, (2) a user-specified region on the map, (3) some user-preferred locations. Based on the search system, users can interact with the system by specifying a region or several interest points on the map to find paths. Extensive experiments show the effectiveness of the proposed framework.
机译:由于复杂的旅行要求和缺乏方便的工具/系统来帮助规划,旅行规划通常是一个非常耗时的任务。在本文中,我们提出了一种基于地理标记照片的旅行路径搜索系统,以促进游客的旅行计划,不仅在访问的位置,还要访问。 Web上的公共盟友可用的大规模地理标记照片使得该系统成为可以编码丰富的旅行相关的元数据,并且可用于从以前的游客挖掘旅行路径。在这项工作中,大约2000万个地理标记的照片从Panoramio.com爬行。然后从爬行的地理标记的照片中介入了大量的旅行路径。之后,建立搜索系统以索引并搜索路径,并提出稀疏倒角距离来测量两个路径的相似性。搜索系统支持各种类型的查询,包括(1)目的地名称,(2)地图上的用户指定的区域,(3)一些用户首选位置。基于搜索系统,用户可以通过指定地图上的区域或几个兴趣点来查找路径来与系统进行交互。广泛的实验表明了拟议框架的有效性。

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